eeprom_legacy_emulated_flash_tests.cpp 18 KB

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  1. /* Copyright 2021 by Don Kjer
  2. *
  3. * This program is free software: you can redistribute it and/or modify
  4. * it under the terms of the GNU General Public License as published by
  5. * the Free Software Foundation, either version 2 of the License, or
  6. * (at your option) any later version.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. * GNU General Public License for more details.
  12. *
  13. * You should have received a copy of the GNU General Public License
  14. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  15. */
  16. #include "gtest/gtest.h"
  17. extern "C" {
  18. #include "eeprom.h"
  19. }
  20. /* Mock Flash Parameters:
  21. *
  22. * === Large Layout ===
  23. * flash size: 65536
  24. * page size: 2048
  25. * density pages: 16
  26. * Simulated EEPROM size: 16384
  27. *
  28. * FlashBuf Layout:
  29. * [Unused | Compact | Write Log ]
  30. * [0......|32768......|49152......65535]
  31. *
  32. * === Tiny Layout ===
  33. * flash size: 1024
  34. * page size: 512
  35. * density pages: 1
  36. * Simulated EEPROM size: 256
  37. *
  38. * FlashBuf Layout:
  39. * [Unused | Compact | Write Log ]
  40. * [0......|512......|768......1023]
  41. *
  42. */
  43. #define LOG_SIZE EEPROM_SIZE
  44. #define LOG_BASE (MOCK_FLASH_SIZE - LOG_SIZE)
  45. #define EEPROM_BASE (LOG_BASE - EEPROM_SIZE)
  46. /* Log encoding helpers */
  47. #define BYTE_VALUE(addr, value) (((addr) << 8) | (value))
  48. #define WORD_ZERO(addr) (0x8000 | ((addr) >> 1))
  49. #define WORD_ONE(addr) (0xA000 | ((addr) >> 1))
  50. #define WORD_NEXT(addr) (0xE000 | (((addr)-0x80) >> 1))
  51. class EepromStm32Test : public testing::Test {
  52. public:
  53. EepromStm32Test() {}
  54. ~EepromStm32Test() {}
  55. protected:
  56. void SetUp() override {
  57. EEPROM_Erase();
  58. }
  59. void TearDown() override {
  60. #ifdef EEPROM_DEBUG
  61. dumpEepromDataBuf();
  62. #endif
  63. }
  64. };
  65. TEST_F(EepromStm32Test, TestErase) {
  66. EEPROM_WriteDataByte(0, 0x42);
  67. EEPROM_Erase();
  68. EXPECT_EQ(EEPROM_ReadDataByte(0), 0);
  69. EXPECT_EQ(EEPROM_ReadDataByte(1), 0);
  70. }
  71. TEST_F(EepromStm32Test, TestReadGarbage) {
  72. uint8_t garbage = 0x3c;
  73. for (int i = 0; i < MOCK_FLASH_SIZE; ++i) {
  74. garbage ^= 0xa3;
  75. garbage += i;
  76. FlashBuf[i] = garbage;
  77. }
  78. EEPROM_Init(); // Just verify we don't crash
  79. }
  80. TEST_F(EepromStm32Test, TestWriteBadAddress) {
  81. EXPECT_EQ(EEPROM_WriteDataByte(EEPROM_SIZE, 0x42), FLASH_BAD_ADDRESS);
  82. EXPECT_EQ(EEPROM_WriteDataWord(EEPROM_SIZE - 1, 0xbeef), FLASH_BAD_ADDRESS);
  83. EXPECT_EQ(EEPROM_WriteDataWord(EEPROM_SIZE, 0xbeef), FLASH_BAD_ADDRESS);
  84. }
  85. TEST_F(EepromStm32Test, TestReadBadAddress) {
  86. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE), 0xFF);
  87. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 1), 0xFFFF);
  88. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE), 0xFFFF);
  89. EXPECT_EQ(eeprom_read_dword((uint32_t*)(EEPROM_SIZE - 4)), 0);
  90. EXPECT_EQ(eeprom_read_dword((uint32_t*)(EEPROM_SIZE - 3)), 0xFF000000);
  91. EXPECT_EQ(eeprom_read_dword((uint32_t*)EEPROM_SIZE), 0xFFFFFFFF);
  92. }
  93. TEST_F(EepromStm32Test, TestReadByte) {
  94. /* Direct compacted-area baseline: Address < 0x80 */
  95. FlashBuf[EEPROM_BASE + 2] = ~0xef;
  96. FlashBuf[EEPROM_BASE + 3] = ~0xbe;
  97. /* Direct compacted-area baseline: Address >= 0x80 */
  98. FlashBuf[EEPROM_BASE + EEPROM_SIZE - 2] = ~0x78;
  99. FlashBuf[EEPROM_BASE + EEPROM_SIZE - 1] = ~0x56;
  100. /* Check values */
  101. EEPROM_Init();
  102. EXPECT_EQ(EEPROM_ReadDataByte(2), 0xef);
  103. EXPECT_EQ(EEPROM_ReadDataByte(3), 0xbe);
  104. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 2), 0x78);
  105. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 1), 0x56);
  106. /* Write Log byte value */
  107. FlashBuf[LOG_BASE] = 0x65;
  108. FlashBuf[LOG_BASE + 1] = 3;
  109. /* Write Log word value */
  110. *(uint16_t*)&FlashBuf[LOG_BASE + 2] = WORD_NEXT(EEPROM_SIZE - 2);
  111. *(uint16_t*)&FlashBuf[LOG_BASE + 4] = ~0x9abc;
  112. /* Check values */
  113. EEPROM_Init();
  114. EXPECT_EQ(EEPROM_ReadDataByte(2), 0xef);
  115. EXPECT_EQ(EEPROM_ReadDataByte(3), 0x65);
  116. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 2), 0xbc);
  117. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 1), 0x9a);
  118. }
  119. TEST_F(EepromStm32Test, TestWriteByte) {
  120. /* Direct compacted-area baseline: Address < 0x80 */
  121. EEPROM_WriteDataByte(2, 0xef);
  122. EEPROM_WriteDataByte(3, 0xbe);
  123. /* Direct compacted-area baseline: Address >= 0x80 */
  124. EEPROM_WriteDataByte(EEPROM_SIZE - 2, 0x78);
  125. EEPROM_WriteDataByte(EEPROM_SIZE - 1, 0x56);
  126. /* Check values */
  127. /* First write in each aligned word should have been direct */
  128. EXPECT_EQ(FlashBuf[EEPROM_BASE + 2], (uint8_t)~0xef);
  129. EXPECT_EQ(FlashBuf[EEPROM_BASE + EEPROM_SIZE - 2], (uint8_t)~0x78);
  130. /* Second write per aligned word requires a log entry */
  131. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE], BYTE_VALUE(3, 0xbe));
  132. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 2], WORD_NEXT(EEPROM_SIZE - 1));
  133. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 4], (uint16_t)~0x5678);
  134. }
  135. TEST_F(EepromStm32Test, TestByteRoundTrip) {
  136. /* Direct compacted-area: Address < 0x80 */
  137. EEPROM_WriteDataWord(0, 0xdead);
  138. EEPROM_WriteDataByte(2, 0xef);
  139. EEPROM_WriteDataByte(3, 0xbe);
  140. /* Direct compacted-area: Address >= 0x80 */
  141. EEPROM_WriteDataByte(EEPROM_SIZE - 2, 0x78);
  142. EEPROM_WriteDataByte(EEPROM_SIZE - 1, 0x56);
  143. /* Check values */
  144. EEPROM_Init();
  145. EXPECT_EQ(EEPROM_ReadDataByte(0), 0xad);
  146. EXPECT_EQ(EEPROM_ReadDataByte(1), 0xde);
  147. EXPECT_EQ(EEPROM_ReadDataByte(2), 0xef);
  148. EXPECT_EQ(EEPROM_ReadDataByte(3), 0xbe);
  149. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 2), 0x78);
  150. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 1), 0x56);
  151. /* Write log entries */
  152. EEPROM_WriteDataByte(2, 0x80);
  153. EEPROM_WriteDataByte(EEPROM_SIZE - 2, 0x3c);
  154. /* Check values */
  155. EEPROM_Init();
  156. EXPECT_EQ(EEPROM_ReadDataByte(2), 0x80);
  157. EXPECT_EQ(EEPROM_ReadDataByte(3), 0xbe);
  158. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 2), 0x3c);
  159. EXPECT_EQ(EEPROM_ReadDataByte(EEPROM_SIZE - 1), 0x56);
  160. }
  161. TEST_F(EepromStm32Test, TestReadWord) {
  162. /* Direct compacted-area baseline: Address < 0x80 */
  163. FlashBuf[EEPROM_BASE + 0] = ~0xad;
  164. FlashBuf[EEPROM_BASE + 1] = ~0xde;
  165. /* Direct compacted-area baseline: Address >= 0x80 */
  166. FlashBuf[EEPROM_BASE + 200] = ~0xcd;
  167. FlashBuf[EEPROM_BASE + 201] = ~0xab;
  168. FlashBuf[EEPROM_BASE + EEPROM_SIZE - 4] = ~0x34;
  169. FlashBuf[EEPROM_BASE + EEPROM_SIZE - 3] = ~0x12;
  170. FlashBuf[EEPROM_BASE + EEPROM_SIZE - 2] = ~0x78;
  171. FlashBuf[EEPROM_BASE + EEPROM_SIZE - 1] = ~0x56;
  172. /* Check values */
  173. EEPROM_Init();
  174. EXPECT_EQ(EEPROM_ReadDataWord(0), 0xdead);
  175. EXPECT_EQ(EEPROM_ReadDataWord(200), 0xabcd);
  176. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 4), 0x1234);
  177. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 2), 0x5678);
  178. /* Write Log word zero-encoded */
  179. *(uint16_t*)&FlashBuf[LOG_BASE] = WORD_ZERO(200);
  180. /* Write Log word one-encoded */
  181. *(uint16_t*)&FlashBuf[LOG_BASE + 2] = WORD_ONE(EEPROM_SIZE - 4);
  182. /* Write Log word value */
  183. *(uint16_t*)&FlashBuf[LOG_BASE + 4] = WORD_NEXT(EEPROM_SIZE - 2);
  184. *(uint16_t*)&FlashBuf[LOG_BASE + 6] = ~0x9abc;
  185. /* Check values */
  186. EEPROM_Init();
  187. EXPECT_EQ(EEPROM_ReadDataWord(200), 0);
  188. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 4), 1);
  189. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 2), 0x9abc);
  190. }
  191. TEST_F(EepromStm32Test, TestWriteWord) {
  192. /* Direct compacted-area: Address < 0x80 */
  193. EEPROM_WriteDataWord(0, 0xdead); // Aligned
  194. EEPROM_WriteDataWord(3, 0xbeef); // Unaligned
  195. /* Direct compacted-area: Address >= 0x80 */
  196. EEPROM_WriteDataWord(200, 0xabcd); // Aligned
  197. EEPROM_WriteDataWord(203, 0x9876); // Unaligned
  198. EEPROM_WriteDataWord(EEPROM_SIZE - 4, 0x1234);
  199. EEPROM_WriteDataWord(EEPROM_SIZE - 2, 0x5678);
  200. /* Write Log word zero-encoded */
  201. EEPROM_WriteDataWord(EEPROM_SIZE - 4, 0);
  202. /* Write Log word one-encoded */
  203. EEPROM_WriteDataWord(EEPROM_SIZE - 2, 1);
  204. /* Write Log word value aligned */
  205. EEPROM_WriteDataWord(200, 0x4321); // Aligned
  206. /* Write Log word value unaligned */
  207. EEPROM_WriteDataByte(202, 0x3c); // Set neighboring byte
  208. EEPROM_WriteDataWord(203, 0xcdef); // Unaligned
  209. /* Check values */
  210. /* Direct compacted-area */
  211. EXPECT_EQ(*(uint16_t*)&FlashBuf[EEPROM_BASE], (uint16_t)~0xdead);
  212. EXPECT_EQ(*(uint16_t*)&FlashBuf[EEPROM_BASE + 3], (uint16_t)~0xbeef);
  213. EXPECT_EQ(*(uint16_t*)&FlashBuf[EEPROM_BASE + 200], (uint16_t)~0xabcd);
  214. EXPECT_EQ(FlashBuf[EEPROM_BASE + 203], (uint8_t)~0x76);
  215. EXPECT_EQ(FlashBuf[EEPROM_BASE + 204], (uint8_t)~0x98);
  216. EXPECT_EQ(*(uint16_t*)&FlashBuf[EEPROM_BASE + EEPROM_SIZE - 4], (uint16_t)~0x1234);
  217. EXPECT_EQ(*(uint16_t*)&FlashBuf[EEPROM_BASE + EEPROM_SIZE - 2], (uint16_t)~0x5678);
  218. /* Write Log word zero-encoded */
  219. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE], WORD_ZERO(EEPROM_SIZE - 4));
  220. /* Write Log word one-encoded */
  221. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 2], WORD_ONE(EEPROM_SIZE - 2));
  222. /* Write Log word value aligned */
  223. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 4], WORD_NEXT(200));
  224. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 6], (uint16_t)~0x4321);
  225. /* Write Log word value unaligned */
  226. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 8], WORD_NEXT(202));
  227. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 10], (uint16_t)~0x763c);
  228. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 12], WORD_NEXT(202));
  229. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 14], (uint16_t)~0xef3c);
  230. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 16], WORD_NEXT(204));
  231. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 18], (uint16_t)~0x00cd);
  232. }
  233. TEST_F(EepromStm32Test, TestWordRoundTrip) {
  234. /* Direct compacted-area: Address < 0x80 */
  235. EEPROM_WriteDataWord(0, 0xdead); // Aligned
  236. EEPROM_WriteDataWord(3, 0xbeef); // Unaligned
  237. /* Direct compacted-area: Address >= 0x80 */
  238. EEPROM_WriteDataWord(200, 0xabcd); // Aligned
  239. EEPROM_WriteDataWord(203, 0x9876); // Unaligned
  240. EEPROM_WriteDataWord(EEPROM_SIZE - 4, 0x1234);
  241. EEPROM_WriteDataWord(EEPROM_SIZE - 2, 0x5678);
  242. /* Check values */
  243. EEPROM_Init();
  244. EXPECT_EQ(EEPROM_ReadDataWord(0), 0xdead);
  245. EXPECT_EQ(EEPROM_ReadDataWord(3), 0xbeef);
  246. EXPECT_EQ(EEPROM_ReadDataWord(200), 0xabcd);
  247. EXPECT_EQ(EEPROM_ReadDataWord(203), 0x9876);
  248. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 4), 0x1234);
  249. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 2), 0x5678);
  250. /* Write Log word zero-encoded */
  251. EEPROM_WriteDataWord(EEPROM_SIZE - 4, 0);
  252. /* Write Log word one-encoded */
  253. EEPROM_WriteDataWord(EEPROM_SIZE - 2, 1);
  254. /* Write Log word value aligned */
  255. EEPROM_WriteDataWord(200, 0x4321); // Aligned
  256. /* Write Log word value unaligned */
  257. EEPROM_WriteDataByte(202, 0x3c); // Set neighboring byte
  258. EEPROM_WriteDataWord(203, 0xcdef); // Unaligned
  259. /* Check values */
  260. EEPROM_Init();
  261. EXPECT_EQ(EEPROM_ReadDataWord(200), 0x4321);
  262. EXPECT_EQ(EEPROM_ReadDataByte(202), 0x3c);
  263. EXPECT_EQ(EEPROM_ReadDataWord(203), 0xcdef);
  264. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 4), 0);
  265. EXPECT_EQ(EEPROM_ReadDataWord(EEPROM_SIZE - 2), 1);
  266. }
  267. TEST_F(EepromStm32Test, TestByteWordBoundary) {
  268. /* Direct compacted-area write */
  269. EEPROM_WriteDataWord(0x7e, 0xdead);
  270. EEPROM_WriteDataWord(0x80, 0xbeef);
  271. /* Byte log entry */
  272. EEPROM_WriteDataByte(0x7f, 0x3c);
  273. /* Word log entry */
  274. EEPROM_WriteDataByte(0x80, 0x18);
  275. /* Check values */
  276. EEPROM_Init();
  277. EXPECT_EQ(EEPROM_ReadDataWord(0x7e), 0x3cad);
  278. EXPECT_EQ(EEPROM_ReadDataWord(0x80), 0xbe18);
  279. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE], BYTE_VALUE(0x7f, 0x3c));
  280. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 2], WORD_NEXT(0x80));
  281. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 4], (uint16_t)~0xbe18);
  282. /* Byte log entries */
  283. EEPROM_WriteDataWord(0x7e, 0xcafe);
  284. /* Check values */
  285. EEPROM_Init();
  286. EXPECT_EQ(EEPROM_ReadDataWord(0x7e), 0xcafe);
  287. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 6], BYTE_VALUE(0x7e, 0xfe));
  288. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 8], BYTE_VALUE(0x7f, 0xca));
  289. /* Byte and Word log entries */
  290. EEPROM_WriteDataWord(0x7f, 0xba5e);
  291. /* Check values */
  292. EEPROM_Init();
  293. EXPECT_EQ(EEPROM_ReadDataWord(0x7f), 0xba5e);
  294. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 10], BYTE_VALUE(0x7f, 0x5e));
  295. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 12], WORD_NEXT(0x80));
  296. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 14], (uint16_t)~0xbeba);
  297. /* Word log entry */
  298. EEPROM_WriteDataWord(0x80, 0xf00d);
  299. /* Check values */
  300. EEPROM_Init();
  301. EXPECT_EQ(EEPROM_ReadDataWord(0x80), 0xf00d);
  302. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 16], WORD_NEXT(0x80));
  303. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + 18], (uint16_t)~0xf00d);
  304. }
  305. TEST_F(EepromStm32Test, TestDWordRoundTrip) {
  306. /* Direct compacted-area: Address < 0x80 */
  307. eeprom_write_dword((uint32_t*)0, 0xdeadbeef); // Aligned
  308. eeprom_write_dword((uint32_t*)9, 0x12345678); // Unaligned
  309. /* Direct compacted-area: Address >= 0x80 */
  310. eeprom_write_dword((uint32_t*)200, 0xfacef00d);
  311. eeprom_write_dword((uint32_t*)(EEPROM_SIZE - 4), 0xba5eba11); // Aligned
  312. eeprom_write_dword((uint32_t*)(EEPROM_SIZE - 9), 0xcafed00d); // Unaligned
  313. /* Check direct values */
  314. EEPROM_Init();
  315. EXPECT_EQ(eeprom_read_dword((uint32_t*)0), 0xdeadbeef);
  316. EXPECT_EQ(eeprom_read_dword((uint32_t*)9), 0x12345678);
  317. EXPECT_EQ(eeprom_read_dword((uint32_t*)200), 0xfacef00d);
  318. EXPECT_EQ(eeprom_read_dword((uint32_t*)(EEPROM_SIZE - 4)), 0xba5eba11); // Aligned
  319. EXPECT_EQ(eeprom_read_dword((uint32_t*)(EEPROM_SIZE - 9)), 0xcafed00d); // Unaligned
  320. /* Write Log byte encoded */
  321. eeprom_write_dword((uint32_t*)0, 0xdecafbad);
  322. eeprom_write_dword((uint32_t*)9, 0x87654321);
  323. /* Write Log word encoded */
  324. eeprom_write_dword((uint32_t*)200, 1);
  325. /* Write Log word value aligned */
  326. eeprom_write_dword((uint32_t*)(EEPROM_SIZE - 4), 0xdeadc0de); // Aligned
  327. eeprom_write_dword((uint32_t*)(EEPROM_SIZE - 9), 0x6789abcd); // Unaligned
  328. /* Check log values */
  329. EEPROM_Init();
  330. EXPECT_EQ(eeprom_read_dword((uint32_t*)0), 0xdecafbad);
  331. EXPECT_EQ(eeprom_read_dword((uint32_t*)9), 0x87654321);
  332. EXPECT_EQ(eeprom_read_dword((uint32_t*)200), 1);
  333. EXPECT_EQ(eeprom_read_dword((uint32_t*)(EEPROM_SIZE - 4)), 0xdeadc0de); // Aligned
  334. EXPECT_EQ(eeprom_read_dword((uint32_t*)(EEPROM_SIZE - 9)), 0x6789abcd); // Unaligned
  335. }
  336. TEST_F(EepromStm32Test, TestBlockRoundTrip) {
  337. char src0[] = "0123456789abcdef";
  338. void* src1 = (void*)&src0[1];
  339. /* Various alignments of src & dst, Address < 0x80 */
  340. eeprom_write_block(src0, (void*)0, sizeof(src0));
  341. eeprom_write_block(src0, (void*)21, sizeof(src0));
  342. eeprom_write_block(src1, (void*)40, sizeof(src0) - 1);
  343. eeprom_write_block(src1, (void*)61, sizeof(src0) - 1);
  344. /* Various alignments of src & dst, Address >= 0x80 */
  345. eeprom_write_block(src0, (void*)140, sizeof(src0));
  346. eeprom_write_block(src0, (void*)161, sizeof(src0));
  347. eeprom_write_block(src1, (void*)180, sizeof(src0) - 1);
  348. eeprom_write_block(src1, (void*)201, sizeof(src0) - 1);
  349. /* Check values */
  350. EEPROM_Init();
  351. char dstBuf[256] = {0};
  352. char* dst0a = (char*)dstBuf;
  353. char* dst0b = (char*)&dstBuf[20];
  354. char* dst1a = (char*)&dstBuf[41];
  355. char* dst1b = (char*)&dstBuf[61];
  356. char* dst0c = (char*)&dstBuf[80];
  357. char* dst0d = (char*)&dstBuf[100];
  358. char* dst1c = (char*)&dstBuf[121];
  359. char* dst1d = (char*)&dstBuf[141];
  360. eeprom_read_block((void*)dst0a, (void*)0, sizeof(src0));
  361. eeprom_read_block((void*)dst0b, (void*)21, sizeof(src0));
  362. eeprom_read_block((void*)dst1a, (void*)40, sizeof(src0) - 1);
  363. eeprom_read_block((void*)dst1b, (void*)61, sizeof(src0) - 1);
  364. eeprom_read_block((void*)dst0c, (void*)140, sizeof(src0));
  365. eeprom_read_block((void*)dst0d, (void*)161, sizeof(src0));
  366. eeprom_read_block((void*)dst1c, (void*)180, sizeof(src0) - 1);
  367. eeprom_read_block((void*)dst1d, (void*)201, sizeof(src0) - 1);
  368. EXPECT_EQ(strcmp((char*)src0, dst0a), 0);
  369. EXPECT_EQ(strcmp((char*)src0, dst0b), 0);
  370. EXPECT_EQ(strcmp((char*)src0, dst0c), 0);
  371. EXPECT_EQ(strcmp((char*)src0, dst0d), 0);
  372. EXPECT_EQ(strcmp((char*)src1, dst1a), 0);
  373. EXPECT_EQ(strcmp((char*)src1, dst1b), 0);
  374. EXPECT_EQ(strcmp((char*)src1, dst1c), 0);
  375. EXPECT_EQ(strcmp((char*)src1, dst1d), 0);
  376. }
  377. TEST_F(EepromStm32Test, TestCompaction) {
  378. /* Direct writes */
  379. eeprom_write_dword((uint32_t*)0, 0xdeadbeef);
  380. eeprom_write_byte((uint8_t*)4, 0x3c);
  381. eeprom_write_word((uint16_t*)6, 0xd00d);
  382. eeprom_write_dword((uint32_t*)150, 0xcafef00d);
  383. eeprom_write_dword((uint32_t*)200, 0x12345678);
  384. /* Fill write log entries */
  385. uint32_t i;
  386. uint32_t val = 0xd8453c6b;
  387. for (i = 0; i < (LOG_SIZE / (sizeof(uint32_t) * 2)); i++) {
  388. val ^= 0x593ca5b3;
  389. val += i;
  390. eeprom_write_dword((uint32_t*)200, val);
  391. }
  392. /* Check values pre-compaction */
  393. EEPROM_Init();
  394. EXPECT_EQ(eeprom_read_dword((uint32_t*)0), 0xdeadbeef);
  395. EXPECT_EQ(eeprom_read_byte((uint8_t*)4), 0x3c);
  396. EXPECT_EQ(eeprom_read_word((uint16_t*)6), 0xd00d);
  397. EXPECT_EQ(eeprom_read_dword((uint32_t*)150), 0xcafef00d);
  398. EXPECT_EQ(eeprom_read_dword((uint32_t*)200), val);
  399. EXPECT_NE(*(uint16_t*)&FlashBuf[LOG_BASE], 0xFFFF);
  400. EXPECT_NE(*(uint16_t*)&FlashBuf[LOG_BASE + LOG_SIZE - 2], 0xFFFF);
  401. /* Run compaction */
  402. eeprom_write_byte((uint8_t*)4, 0x1f);
  403. EEPROM_Init();
  404. EXPECT_EQ(eeprom_read_dword((uint32_t*)0), 0xdeadbeef);
  405. EXPECT_EQ(eeprom_read_byte((uint8_t*)4), 0x1f);
  406. EXPECT_EQ(eeprom_read_word((uint16_t*)6), 0xd00d);
  407. EXPECT_EQ(eeprom_read_dword((uint32_t*)150), 0xcafef00d);
  408. EXPECT_EQ(eeprom_read_dword((uint32_t*)200), val);
  409. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE], 0xFFFF);
  410. EXPECT_EQ(*(uint16_t*)&FlashBuf[LOG_BASE + LOG_SIZE - 2], 0xFFFF);
  411. }